共 53 条
Microfluidic Characterization of Red Blood Cells Microcirculation under Oxidative Stress
被引:8
作者:

Besedina, Nadezhda A.
论文数: 0 引用数: 0
h-index: 0
机构:
Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia

Skverchinskaya, Elisaveta A.
论文数: 0 引用数: 0
h-index: 0
机构:
Russian Acad Sci, Sechenov Inst Evolutionary Physiol & Biochem, St Petersburg 194223, Russia Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia

Ivanov, Alexander S.
论文数: 0 引用数: 0
h-index: 0
机构:
Peter Great St Petersburg Polytechn Univ, Inst Phys & Mech, St Petersburg 195251, Russia Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia

Kotlyar, Konstantin P.
论文数: 0 引用数: 0
h-index: 0
机构:
Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia
Inst Analyt Instrumentat, RAS, St Petersburg 190103, Russia Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia

Morozov, Ivan A.
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h-index: 0
机构:
Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia

Filatov, Nikita A.
论文数: 0 引用数: 0
h-index: 0
机构:
Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia

Mindukshev, Igor V.
论文数: 0 引用数: 0
h-index: 0
机构:
Russian Acad Sci, Sechenov Inst Evolutionary Physiol & Biochem, St Petersburg 194223, Russia Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia

Bukatin, Anton S.
论文数: 0 引用数: 0
h-index: 0
机构:
Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia
Inst Analyt Instrumentat, RAS, St Petersburg 190103, Russia Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia
机构:
[1] Alferov St Petersburg Natl Res Acad Univ Russian, Lab Renewable Energy Sources, St Petersburg 194021, Russia
[2] Russian Acad Sci, Sechenov Inst Evolutionary Physiol & Biochem, St Petersburg 194223, Russia
[3] Peter Great St Petersburg Polytechn Univ, Inst Phys & Mech, St Petersburg 195251, Russia
[4] Inst Analyt Instrumentat, RAS, St Petersburg 190103, Russia
来源:
基金:
俄罗斯基础研究基金会;
关键词:
microfluidics;
oxidative stress;
red blood cells;
microcirculation;
biophysical phenotyping;
DEFORMABILITY;
TECHNOLOGY;
MECHANICS;
CHIPS;
RATIO;
D O I:
10.3390/cells10123552
中图分类号:
Q2 [细胞生物学];
学科分类号:
071009 ;
090102 ;
摘要:
Microcirculation is one of the basic functional processes where the main gas exchange between red blood cells (RBCs) and surrounding tissues occurs. It is greatly influenced by the shape and deformability of RBCs, which can be affected by oxidative stress induced by different drugs and diseases leading to anemia. Here we investigated how in vitro microfluidic characterization of RBCs transit velocity in microcapillaries can indicate cells damage and its correlation with clinical hematological analysis. For this purpose, we compared an SU-8 mold with an Si-etched mold for fabrication of PDMS microfluidic devices and quantitatively figured out that oxidative stress induced by tert-Butyl hydroperoxide splits all RBCs into two subpopulations of normal and slow cells according to their transit velocity. Obtained results agree with the hematological analysis showing that such changes in RBCs velocities are due to violations of shape, volume, and increased heterogeneity of the cells. These data show that characterization of RBCs transport in microfluidic devices can directly reveal violations of microcirculation caused by oxidative stress. Therefore, it can be used for characterization of the ability of RBCs to move in microcapillaries, estimating possible side effects of cancer chemotherapy, and predicting the risk of anemia.
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